A novel nonlinear model parameters identification algorithm

Tang Bin, Mo Lei, Wu Honggang, Zheng Xiaoxia
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引用次数: 1

Abstract

It is difficult for least square method (LS) to deal with the ill-conditioned matrix of nonlinear polynomial model. In the case of the higher order of system, the matrix inversion is very complicated. A new approach based on LS is present which is combined with mirror-injection algorithm in order to obtain polynomial parameters identification of nonlinear system model. The columns of coefficient matrix of the inconsistent equations of nonlinear polynomial model are orthogonalized. The novel method avoids the high-order matrix inversion and ill-conditioned matrix problem. The precision and velocity of identification are improved, while the computation load is low simultaneously. Performance analysis is carried out using MATLAB simulation. The results prove the effectiveness of the proposed approach.
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一种新的非线性模型参数辨识算法
最小二乘法很难处理非线性多项式模型的病态矩阵。对于高阶系统,矩阵的反演是非常复杂的。针对非线性系统模型的多项式参数辨识问题,提出了一种基于最小二乘法的与镜像注入算法相结合的方法。对非线性多项式模型不一致方程的系数矩阵的列进行了正交化。该方法避免了高阶矩阵反演和病态矩阵问题。提高了识别的精度和速度,同时降低了计算量。利用MATLAB仿真进行性能分析。实验结果证明了该方法的有效性。
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